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Quantum Simulation
Boson Models with Interactions of Arbitrary Order
arXiv
Authors: P. Van Isacker
Year
2026
Paper ID
67936
Status
Preprint
Abstract Read
~2 min
Abstract Words
154
Citations
N/A
Abstract
The paper considers quantal many-boson systems that are described by a rotationally invariant and boson-number conserving Hamiltonian. The properties of a generic model are studied which treats N bosons of p different kinds with non-zero angular momenta l_1,l_2,...,l_p, possibly augmented with a (number of) scalar s boson(s). The order k of the interaction between the bosons is arbitrary and closed formulas are given for matrix elements between N-boson states for any k if p=1 and p=2. A recursive procedure is defined for arbitrary k and p. With the expressions derived in the paper it is possible to express symbolically a Hamiltonian matrix element between N-boson states as a linear combination of k-body interaction matrix elements. More generally, the formulas allow the evaluation of matrix elements of tensor operators that are not necessarily scalar nor boson-number conserving. The numerical implementation of the formalism is discussed and illustrated with a few examples.
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- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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- The paper considers quantal many-boson systems that are described by a rotationally invariant and boson-number conserving Hamiltonian.
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